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Boiling#R##N#Research and Advances | 2017

Topics on Boiling: From Fundamentals to Applications

Tomohiko Yamaguchi; Gyoko Nagayama; Takaharu Tsuruta; Yuyan Jiang; Shigeo Maruyama; Kunito Okuyama; Yasushi Saito; Koichi Suzuki; Manabu Tange; Ichiro Ueno; Tomohiro Osawa; Yasusuke Hattori; Takahito Saiki; Jun Ando; Kazuna Horiuchi; Yusuke Koiwa; Hitoshi Asano; Kazuhisa Yuki; Yasuyuki Takata; Yoshiyuki Abe; R. Savino; Serizawa Yoshihiro; Hidetoshi Ohkubo; Yutaka Abe; Shinpei Saitho; Masahiro Furuya; Satoru Momoki; Chieko Kondou; Shigeru Koyama; Mamoru Ozawa

This chapter deals with the various topics on boiling with regard to aspects of the fundamentals and applications to introduce the development of each author’s research in recent decades. The first four sections investigate the physics of boiling as phase change phenomena, including thermodynamic phase equilibrium state (Section 6.1), molecular dynamics of phase change (Section 6.2), computational analysis of boiling in micro-nano scale (Section 6.3), and transient boiling under rapid heating (Section 6.4). Section 6.5 deals with two-phase distribution measurement using neuron radiography. The following three sections then examine a specific boiling regime during highly subcooled boiling, called microbubble emission boiling (MEB). Each section treats the overall characteristics of MEB (Section 6.6), the occurrence conditions of MEB (Section 6.7), and vapor collapses in subcooled liquid related to MEB (Section 6.8). The next four sections are devoted to heat transfer augmentation with various techniques: thermal spray coating (Section 6.9), porous media (Section 6.10), patterned wettability refinement (Section 6.11), and self-rewetting fluid (Section 6.12). The last seven sections describe topics on applications of boiling. Sections 6.13 and 6.14 introduce boiling research in steel industries. Sections 6.15 and 6.16 explore vapor explosion. Boiling of refrigerant is discussed with heat pump systems in Section 6.17 and with automobile air conditioners in Section 6.18. Boiling related to emergency cooling core systems is considered in Section 6.19.


Archive | 2014

Condensation and Evaporation of R134a, R1234ze(E) and R1234ze(Z) Flow in Horizontal Microfin Tubes at Higher Temperature

Chieko Kondou; Fumiya Mishima; JinFan Liu; Shigeru Koyama


The reports of Institute of Advanced Material Study Kyushu University | 1998

Flow Pattern of Pure Refrigerant HFC134a Evaporating in a Horizontal Capillary Tube

憲 桑原; 繁 小山; 欣吾 下村; 澂雄 渡邉; 伸朗 長; Ken Kuwahara; Shigeru Koyama; Kingo Shimomura; Choyu Watanabe; Noburo Osa


Archive | 2014

Thermodynamic Assessment of High-Temperature Heat Pumps for Heat Recovery

Chieko Kondou; Shigeru Koyama


Archive | 2006

Developing Two-Phase Flow Distribution in Horizontal Headers With Downward Minichannel-Branches

Shigeru Koyama; Agung Tri Wijayanta; Ken Kuwahara; Shirou Ikuta


24th IIR International Congress of Refrigeration, ICR 2015 | 2015

Comparative assessment of heat pump cycle operated with R32/R1234ze(E) and R32/R1234yf mixtures

Hideki Kojima; Sho Fukuda; Chieko Kondou; Nobuo Takata; Shigeru Koyama


Archive | 2014

Condensation and Evaporation of R744/R32/R1234ze(E) Flow in Horizontal Microfin Tubes

Chieko Kondou; Fumiya Mishima; JinFan Liu; Shigeru Koyama


Archive | 2012

The Circulation Composition Characteristic of the Zeotropic Mixture R1234ze(E)/R32 in a Heat Pump Cycle

Sho Fukuda; Nobuo Takata; Shigeru Koyama


7th Asian Conference on Refrigeration and Air Conditioning, ACRA 2014 | 2014

Cycle performance of low GWP refrigerant mixtures R-32/1234ze(E) and R-744/32/1234ze(E)

Sho Fukuda; Chieko Kondou; Nobuo Takata; Shigeru Koyama


Trans.JSRAE | 2013

Condensation and Evaporation of Low GWP Refrigerant Mixture R 32/R 1234ze(E) in Horizontal Microfin Tubes

Chieko Kondou; Fumiya Mishima; Shigeru Koyama

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